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钢/GFRP/CFRP混合结构在弯曲载荷作用下力学行为的试验与数值研究及粘结强度评估

Experimental and Numerical Study on Mechanical Behavior of Steel/GFRP/CFRP Hybrid Structure under Bending Loading with Adhesive Bond Strength Assessment.

作者信息

Marszałek Jerzy, Stadnicki Jacek

机构信息

Department of Mechanical Engineering Fundamentals, Faculty of Mechanical Engineering and Computer Science, University of Bielsko-Biala, Willowa 2, 43-309 Bielsko-Biala, Poland.

出版信息

Materials (Basel). 2023 Jul 18;16(14):5069. doi: 10.3390/ma16145069.

Abstract

Adhesive bonding between steel and carbon-fiber-reinforced polymer (CFRP) composite leads to hybrid structures that combine the high strength and ductility of steel with the excellent specific strength and stiffness of CFRP composite. There is, however, a concern regarding possible galvanic corrosion when steel and carbon fibers are bonded together. One way to overcome this problem is placing glass fiber-reinforced polymer (GFRP) composite between the steel and CFRP composite, creating a more complex steel/GFRP/CFRP hybrid structure. Therefore, experimental and numerical studies on the mechanical behavior of the adhesive bonds between the steel sheet and the GFRP/CFRP hybrid composite were carried out. Among the different failure patterns, mode II was chosen for analysis because metal-polymer composite structures are usually subjected to bending, and debonding may occur due to in-plane shear stress. The tested steel/GFRP/CFRP hybrid structure was made of a hot-formed 22MnB5 boron steel sheet, intermediate single-ply bidirectional GFRP composite, and three-ply unidirectional CFRP composite. Additional mechanical tests were also carried out to determine various engineering constants of the components to simulate the debonding process. A finite element model of the steel/GFRP/CFRP hybrid structure with a typical cohesive interface was established and verified against the experimental data. The results showed that due to the use of various materials, the dominant failure modes in the hybrid structure under bending loading were a brittle fracture of the CFRP composite and debonding between the steel and the GFRP composite. However, the load-bearing capacity of the hybrid structure was five times greater than that of a non-reinforced steel sheet. In addition, its mass was only 28% greater than the non-reinforced steel sheet. The obtained results provided valuable conclusions and useful data to continue further research on the mechanical behavior of steel/GFRP/CFRP hybrid structures.

摘要

钢与碳纤维增强聚合物(CFRP)复合材料之间的粘结形成了混合结构,该结构将钢的高强度和延展性与CFRP复合材料优异的比强度和刚度结合在一起。然而,当钢和碳纤维粘结在一起时,人们担心可能会发生电偶腐蚀。克服这个问题的一种方法是在钢和CFRP复合材料之间放置玻璃纤维增强聚合物(GFRP)复合材料,从而形成更复杂的钢/GFRP/CFRP混合结构。因此,对钢板与GFRP/CFRP混合复合材料之间粘结的力学行为进行了实验和数值研究。在不同的失效模式中,选择模式II进行分析,因为金属-聚合物复合材料结构通常承受弯曲作用,并且由于面内剪应力可能会发生脱粘。测试的钢/GFRP/CFRP混合结构由热成型的22MnB5硼钢板、中间单层双向GFRP复合材料和三层单向CFRP复合材料制成。还进行了额外的力学测试,以确定各部件的各种工程常数,从而模拟脱粘过程。建立了具有典型粘结界面的钢/GFRP/CFRP混合结构的有限元模型,并根据实验数据进行了验证。结果表明,由于使用了多种材料,混合结构在弯曲载荷下的主要失效模式是CFRP复合材料的脆性断裂以及钢与GFRP复合材料之间的脱粘。然而,混合结构的承载能力比未增强的钢板大五倍。此外,其质量仅比未增强钢板大28%。所得结果为继续深入研究钢/GFRP/CFRP混合结构的力学行为提供了有价值的结论和有用的数据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2f06/10384386/4cc2e6960ab4/materials-16-05069-g001.jpg

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